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Energy Research of Moon-to-earth Transfer Architecture Based on Lunar Space Elevator and Three-impulse Transfer

机译:基于月球电梯和三脉冲传递的月地传递结构能量研究

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Lunar space elevator has been imaged to transport payload to orbit from lunar surface. This paper proposes a new moon-to-earth transfer architecture based on lunar space elevator and three-impulse transfer. This architecture utilizes lunar space elevator to transfer spacecraft to a launch altitude h, and then spacecraft produces three delta-vs to transfer to earth. The transfer orbit makes up of three parts: selenocentric elliptical orbit, selenocentric hyperbolic orbit and geocentric elliptical orbit. The energy consumption of transfer architecture is mainly considered in this paper. Optimal energy transfer orbits for different combination of V_e and n are obtained through the optimization of the launch altitude h and three delta-vs, where the V_e is effective exhaust velocity, n is climber-to-spacecraft mass ratio. The optimization results show that compared to the traditional rocket-powered transfer architecture, new architecture could save energy up to 24.2%. We also find that the V_e and n have a significant effect on the optimization results, and the reason is analyzed in the paper.
机译:对月球太空升降机进行了成像,以将有效载荷从月球表面运送到轨道。本文提出了一种新的基于月球空间升降机和三脉冲传输的月对地传输架构。该架构利用月球太空电梯将航天器转移到发射高度h,然后航天器产生三个delta-vs转移到地球。传递轨道由三部分组成:准心椭圆形轨道,准心双曲线轨道和地心椭圆形轨道。本文主要考虑转移架构的能耗。通过优化发射高度h和三个δ-vs,可以获得V_e和n的不同组合的最佳能量传递轨道,其中V_e是有效排气速度,n是爬升器与航天器的质量比。优化结果表明,与传统的火箭动力传递架构相比,新架构可以节省高达24.2%的能源。我们还发现V_e和n对优化结果有显着影响,并分析了原因。

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